SPIRAL CORE CURRENT TRANSFORMER FOR ENERGY HARVESTING APPLICATIONS
20230307177 ยท 2023-09-28
Assignee
Inventors
- Alejandro Montenegro (Chicago, IL, US)
- Raphael Guio (Barrington, IL, US)
- Claire Schauble (Chicago, IL, US)
Cpc classification
Y10T29/49073
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01F27/04
ELECTRICITY
H01F27/06
ELECTRICITY
H01F41/125
ELECTRICITY
Y10T29/4902
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A current transformer assembly for harvesting power from a primary conductor, such as a power line, for operating electronics, where the assembly is secured to the conductor while the conductor is connected. The assembly includes a current transformer having a transformer structure with a central opening that accepts the primary conductor and a spindle member for accepting a current transformer magnetic tape operating as the core of the current transformer. The assembly also includes a tape carrier secured to the structure on which the transformer tape is wound, and a winding device operable to unwind the transformer tape from the tape carrier and wind the tape onto the spindle member.
Claims
1. A current transformer assembly for harvesting power from a primary conductor, the current transformer assembly comprising: a current transformer including a transformer structure having a central opening that accepts the primary conductor and a spindle member for accepting a current transformer magnetic tape or lamination operating as a core of the current transformer; a tape carrier secured to the transformer structure on which the current transformer magnetic tape is wound; and a winding device operable to unwind the current transformer magnetic tape from the tape carrier and wind the current transformer magnetic tape onto the spindle member, wherein the structure is an elliptical structure that includes an inner rail and an outer rail defining a gap therebetween that accepts the tape and operates as the spindle member, the structure being separated into a lower section, a first side section being coupled to one side of the lower section by a first spring-loaded hinge and a second side section being coupled to another side of the lower section by a second spring-loaded hinge.
2. The current transformer assembly according to claim 1 further comprising a snap rod extending across the central opening and being positioned between the first and second side sections against the bias of the first and second spring-loaded hinges and an elastic band extending across the central opening and being coupled at both ends to the lower section, the first side section including a first magnetic tab opposite to the first spring-loaded hinge and the second side section including a second magnetic tab opposite to the second spring-loaded hinge, wherein the primary conductor is inserted into the central opening between the first and second magnetic tabs in a manner that breaks the snap rod and engages the elastic band so that the spring-loaded hinges close the structure causing the first and second magnetic tabs to engage each other so that the primary conductor is positioned between the tabs and the elastic band.
3. The current transformer assembly according to claim 1 wherein the tape carrier is mounted to the outer rail and the magnetic tape extends through a slot in the outer rail, the winding device including a crank having a friction roller mounted thereto that engages the magnetic tape, the crank being operable to rotate the friction roller causing the magnetic tape to move through the slot and wind in the gap.
4. A current transformer assembly for harvesting power from a power line and powering electronics in the assembly, the assembly comprising: a structure including an inner rail and an outer rail defining a gap therebetween, the structure being separated into a lower section, a first side section being coupled to one side of the lower section by a first spring-loaded hinge and a second side section being coupled to another side of the lower section by a second spring-loaded hinge, the first side section including a first magnetic tab opposite to the first spring-loaded hinge and the second side section including a second magnetic tab opposite to the second spring-loaded hinge; a snap rod extending across the central opening and being positioned between the first and second side sections against the bias of the first and second spring-loaded hinges; an elastic band extending across the central opening and being coupled at both ends to the lower section, wherein the power line is inserted into the central opening between the first and second magnetic tabs in a manner that breaks the snap rod and engages the elastic band so that the spring-loaded hinges close the structure causing the first and second magnetic tabs to engage each other so that the power line is positioned and secured between the tabs and the elastic band; a tape carrier mounted to the outer rail and holding a wound current transformer magnetic tape, the magnetic tape extending through a slot in the outer rail; and a crank mounted to the structure and including a friction roller mounted thereto that engages the magnetic tape, the crank being operable to rotate the friction roller causing the magnetic tape to move through the slot and wind in the gap.
5. The current transformer assembly according to claim 4 wherein the structure is an elliptical structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
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[0013]
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[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0024] The following discussion of the embodiments of the disclosure directed to a current transformer assembly including a current transformer having a wound spiral core and being attachable to a connected power line is merely exemplary in nature, and is in no way intended to limit the disclosure or its applications or uses. For example, the discussion below describes the current transformer assembly as being installed on a power line without opening or de-energizing the line. However, as will be appreciated by those skilled in the art, the current transformer assembly of the disclosure may have other applications and uses.
[0025]
[0026] The current transformer assembly 10 further includes a current transformer 32 having a secondary winding 34 and an open tube 36 extending across the center of the secondary winding 34 through which the power line 12 extends, where the tube 36 is rotatable within the secondary winding 34, and where the line 12 is the primary conductor for the transformer 32. Wires 40 are part of the secondary winding 34 and extend into the control box 20 to provide power to electronics therein. The tube 36 is rigidly secured to a circular plate 38 that is rotatably mounted within the housing 14 so that the tube 36 and the plate 48 rotate in combination. The outer housing 14 includes a slot 46, the plate 38 includes a slot 48, the secondary winding 34 includes an opening 50 and the tube 36 includes a slot 52 that all align with each other so as to allow the line 12 to be inserted into the tube 36 without disconnecting it. The bracket 28 is pivotally mounted to the housing 14 so that it can be positioned in an open position to expose the slots 46, 48 and 52 to accept the line 12, as shown in
[0027] A ferromagnetic lamination 60 made of a transformer core material having a high magnetic permeability, such as a suitable steel, having a certain thickness and length suitable for the size of the current transformer 32 is wound on a spindle 62 rigidly secured in the outer housing 14, where one end of the lamination 60 is secured to the spindle 62. The lamination 60 extends into a secondary winding opening 64, where an opposite end of the lamination 60 is secured to the tube 36. The assembly 10 is shown in this configuration in
[0028] The current transformer assembly 10 includes a cylindrical winding device 70 that extends across the enclosure 22, as shown, and that has gear teeth 72 that engage plate teeth 74 that are circumferentially disposed around the plate 38. By rotating the device 70 using a key 76, for example, through a special tool used by the lineman, the engagement of the teeth 72 and 74 causes the plate 38 and the tube 36 to rotate, which pulls on the lamination 60 and causes it to unwind from the spindle 62 and be wound onto the tube 36 to form the core of the transformer 32. The assembly 10 is shown in this configuration in
[0029]
[0030] The current transformer assembly 10 can include any suitable electronics provided in the control box 20 for any particular application that receive electrical power generated in the secondary winding 34 as a result of inductive coupling with the power line 12. Example electronics include, but are not limited to, a current sensor, a temperature sensor, processing circuitry, a humidity sensor, a wireless transceiver, etc.
[0031] Once the lamination 60 has been wound onto the tube 36 in the secondary winding opening 64, then the current transformer 32 is complete in that electrical current flowing in the power line 12 creates magnetic field lines in the wound core 80 that generate an electrical current in the secondary winding 34. The number of the windings of the lamination 60 within the secondary winding opening 64 that form the core 80 would be determined for the particular application. The wound core 80 increases the power transfer efficiency from the power line 12 to the secondary winding 34 because the direction of the magnetic flux is the same as the winding direction of the lamination 60 within the secondary winding opening 64. The wound core 80 also reduces losses due to Eddy currents because laminations are formed as the core 80 is wound.
[0032] The current transformer assembly 10 includes one embodiment for how the spiral core can be deployed in a current transformer that can be mounted to a power line for harvesting power therefrom of the type being discussed herein. Other embodiments showing how the spiral core can be deployed also may be applicable.
[0033] Once the housing 92 is secured to the power line 102, the lineman will then attach a cylindrical tape cartridge 120 to the housing 92. The tape cartridge 120 includes a cartridge housing 122 defining a chamber 124 therein holding a tape winding 126 including a magnetic tape 118 wound on a rod 128 in the chamber 124 and a hook 116 that allows the lineman to hold the cartridge 120. In this embodiment, magnetic pads 130 are secured to the housing 92 and the cartridge 120 includes magnets 132, or another ferromagnetic material, extending from the housing 122 to allow the lineman to attach the cartridge 120 to the current transformer 88. In this configuration, a slot 134 in the housing 92 aligns with a slot 136 in the housing 122. A crank 138 extending from a back surface 140 of the housing 122 is attached to the rod 128 on which the winding 126 is wound so that rotation of the crank 138 in one direction causes the magnetic tape 118 to feed through the slots 134 and 136 so that the magnetic tape 118 is wound on the spindle 112 in the housing 92 and forms the core of the current transformer 88.
[0034] The cartridge 120 can remain attached to the housing 92 where an end of the magnetic tape 118 remains secured to the rod 128 so that the magnetic tape 118 can be wound back on the rod 128 by rotating the crank 138 in the opposite direction to remove the magnetic tape 118 from the housing 92. Alternately, the magnetic tape 118 can be completely wound in the housing 92 and the cartridge 120 removed therefrom, where the cartridge 120 can then be reloaded with another winding for installation on another current transformer.
[0035]
[0036] The assembly 150 also includes a plunger 170 having a head 172 and a rod 174, where tabs 176 and 178 having holes 180 extend from an inside surface of the head 172 on opposite sides of the rod 174. A compression spring 182 is slid onto the rod 174 and the rod 174 is inserted into the spring follower 160 so that the spring 182 is compressed between the head 172 and the housing 156, as shown in
[0037]
[0038] The current transformer assembly 200 is secured to a power line 260 as follows. The assembly 200 is positioned by, for example, a hot stick or otherwise, so that the power line 260 is inserted between the sections 214 and 218 and into the opening 204 so that it snaps the rod 224, as shown in
[0039] The foregoing discussion discloses and describes merely exemplary embodiments of the present disclosure. One skilled in the art will readily recognize from such discussion and from the accompanying drawings and claims that various changes, modifications and variations can be made therein without departing from the spirit and scope of the disclosure as defined in the following claims.